Transverse Properties of Carbon Fibres by Nano-Indentation and Micro-mechanics

Romain Maurin1, Peter Davies2, Nicolas Baral1, Christophe Baley1
1Université de Bretagne Sud, L2PIC, BP 92116, 56321, Lorient Cedex, France
2Materials and Structures Group (ERT/MS), IFREMER, BP70, 29280, Plouzané, France

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Tài liệu tham khảo

Hamada, H., Oya, N., Yamashita, K., Maekawa, Z.I.: Tensile strength and its scatter of unidirectional carbon fibre reinforced composites. J. Reinf. Plast. Compos. 16(2), 119–130 (1997)

Guigon, M.: Microstructures des fibres de carbone. PhD thesis, Université de Technologie de Compiègne (1985)

Chung, D.D.L.: Carbon Fiber Composites. Butterworth-Heinemann, London (1994)

Luyckx, J.: fibres de carbone, technique de l’ingénieur article A 2 110 (in French)

Gibson, R.F.: Principles of Composite Material Mechanics. Engineering Mechanics Series. McGraw-Hill, New York (1994)

Kawabata, S.: Measurement of Anisotropic Mechanical Property and Thermal Conductivity of Single Fiber for Several High Performance Fibers, Proceedings of the 4th Japan–US. Conference on Composite Materials, pp. 253–262. Technomic, Lancaster, PA (1989)

Fujita, K., Sawada, Y., Nakanishi, Y.: Effect of cross-sectional textures on transverse compressive properties of pitch-based carbon fibers. Mater. Sci. Res. Int. 7, 116–121 (2001)

Miyagawa, H., Mase, T., Sato, C., Drown, E., Drzal, L., Ikegami, K.: Comparison of experimental and theoretical transverse elastic modulus of carbon fibers. Carbon 44, 2002–2008 (2006)

Ueda, M., Takiguchi, T.: Measurement of transverse Young’s modulus of fibers by angular characteristics of ultrasonic scattering, Adv. Compos. Mater. 1(4), 309–320 (1991)

Meurs, P., Scheurs, P., Peijs, T., Meijer, E.: Characterization of interphase conditions in composite materials. Composites Part A 27, 781–786 (1996)

Fischer-Cripps, C.: Nanoindentation. Springer, Berlin (2002)

Oliver, W.C., Pharr, G.M.: An improved technique for determining hardness and elastic-modulus using load and displacement sensing indentation experiments. J. Mater. Res. 7, 1564–1583 (1992)

International Organization for Standardization: ISO 14577: metallic materials – instrumented indentation test for hardness and materials parameters. ISO, Geneva (2002)

Godara, A., Raabe, D., Green, S.: The influence of sterilization processes on the micromechanical properties of carbon fiber-reinforced PEEK composites for bone implant applications. Acta Biomaterialia 3, 209–220 (2007)

Marx, D.T., Riester, L.: Mechanical properties of carbon–carbon composite components determined using nanoindentation. Carbon 37, 1679–1684 (1999)

Yamashita, Y., Kawabata, S., Okaka, S., Tanaka, A: mechanical characteristics of PBO single fiber. In: 7th Asian textile conference, New Delhi (2003)

Ueda, M., Takiguchi, T.: Measurement of transverse Young’s modulus of carbon fibres by angular characteristics of ultrasonic scattering. In: The Ultrasonic Symposium, pp. 1081–1085 (1990)

de Kok J.M.M.: Deformation, Yield and fracture of unidirectional composites in transverse loading. PhD thesis, Eindhoven University of Technology, The Netherlands (1995)

Benzarti, K., Cangemi, L., Dal Maso, F.: Transverse properties of unidirectional glass/epoxy composites: influence of fibre surface treatments. Composites Part A 32, 197–206 (2001)

de Kok, J.M.M., Meijer, H.E.H.: Deformation, yield and fracture of unidirectional composites in transverse loading: 1. Influence of fibre volume fraction and test-temperature. Composites Part A 30, 917–932 (1999)

Keusch, S., Haessler, R.: Influence of surface treatment of glass fibres on the dynamic mechanical properties of epoxy resin composites. Composites Part A 30, 997–1002 (1999)

Gusev, A.A., Hine, P.J., Ward, I.M.: Fiber packing and elastic properties of a transversely random unidirectional glass/epoxy composite. Compos. Sci. Technol. 60, 535–541 (2000)

Baley, C., Davies, P., Grohens, Y., Dolto, G.: Application of interlaminar tests to marine composites. A literature review. Appl. Compos. Mater. 11, 96–126 (2004)

Kobets, L., Deev, I.: Carbon fibres: structure and mechanical properties. Compos. Sci. Technol. 57, 1571–1580 (1997)

Dengn, S., Ye, L.: Influence of fiber–matrix adhesion on mechanical properties of graphite/epoxy composites: I. Tensile, flexure, and fatigue properties. J. Reinf. Plast. Compos. 18, 1021–1040 (1999)

Adams, D.F.: Inelastic analysis of a unidirectional composite subjected to transverse normal loading. J. Compos. Mater. 4, 310–328 (1970)

Briscoe, B.J., Sebastian, K.S.: The elastoplastic response of poly(methyl methacrylate) to indentation. Proc. R. Soc. Lond. 452, 439–457 (1996)

Hu, Y., Shen, L., Yang, H., Wang, M., Liu, T., Liang, T., Zhang, J.: Nanoindentation studies on Nylon 11/clay nanocomposites. Polymer Testing 25(4), 492 (2006)

Halpin, J.C., Kardos, J.L.: The Halpin–Tsai equations: a review. Polym. Eng. Sci. 16, 344–352 (1976)

Hahn, H.T., Tsai, S.W.: Introduction to Composite Materials, pp. 378–405. CRC, Boca Raton, FL (1980)

Lee, S.-Y., Springer, G.S.: Effects of cure on the mechanical properties of composites. J. Compos. Mater. 22, 15–29 (1988)

Hopkins, D.A., Chamis, C.C.: Unique set of micromechanics equations for high-temperature metal matrix composites. ASTM STP 964, 159–176 (1988)

Wongsto, A., Li, S.: Micromechanical FE analysis of UD fibre-reinforced composites with fibres distributed at random over the transverse cross-section. Composites Part A 36, 1246–1266 (2005)

Zhang, L., Ernst, L.J., Brouwer, H.R.: Transverse behaviour of a unidirectional composite (glass fibre reinforced unsaturated polyester). Part I. Influence of packing geometry. Mech. Mat. 27, 13–36 (1998)

Oya, N., Johnson, D.J.: Longitudinal compressive behaviour and microstructure of PAN based carbon fibres. Carbon 39, 635–645 (2001)